Reduced Expression of Foxp1 as a Contributing Factor in Huntington's Disease

Anto Sam Crosslee Louis Sam Titus1, Tanzeen Yusuff2, Marlène Cassar3

  • 1Department of Molecular and Cell Biology, University of Texas at Dallas, Richardson, Texas 75080.

Insights

Reduced expression of Foxp1, a neuroprotective protein, in striatal and cortical neurons contributes to Huntington's disease (HD) selectivity. Upregulating Foxp1 isoforms A or D protects neurons, suggesting Foxp1 as a potential therapeutic target for HD.

Area of Science:

  • Neuroscience
  • Genetics
  • Molecular Biology

Background:

  • Huntington's disease (HD) is an inherited neurodegenerative disorder characterized by selective neuronal loss in the striatum and cortex.
  • The huntingtin protein (htt) mutation leads to polyglutamine expansion, causing neuronal dysfunction and death.
  • Foxp1 is a transcription factor selectively expressed in the striatum and cortex, with three major isoforms (A, C, and D) in the brain.

Purpose of the Study:

  • To investigate the role of Foxp1 expression and its isoforms in the selective vulnerability of neurons in Huntington's disease.
  • To determine if Foxp1 expression is altered in HD and if it confers neuroprotection.
  • To explore the mechanism by which Foxp1 exerts its neuroprotective effects.

Main Methods:

  • Analysis of Foxp1 isoform expression in R6/2 HD mice and HD patient brains.
  • Experimental manipulation of Foxp1 expression (overexpression and knockdown) in neuronal cultures.
  • Assessment of neuronal survival and p21 (Cdkn1a) gene expression in response to mutant htt and Foxp1 levels.

Main Results:

  • Expression of Foxp1 isoforms A and D is significantly reduced in the striatum and cortex of HD models and patients.
  • Mutant htt expression downregulates Foxp1, while increasing Foxp1 A or D protects neurons from mutant htt-induced death.
  • Foxp1-mediated neuroprotection involves the transcriptional stimulation of the cell-cycle inhibitory protein p21.

Conclusions:

  • The selective vulnerability of striatal and cortical neurons in HD is linked to the reduced expression of the neuroprotective protein Foxp1.
  • Foxp1 isoform D, like isoform A, is neuroprotective and downregulated in HD, highlighting its potential therapeutic relevance.
  • Targeting Foxp1 and its downstream effector p21 may offer a novel therapeutic strategy for Huntington's disease.